APPLICATION OF CO2 DETECTOR BASED ON SENSORS IN CO2 FLUX DETECTION OF RESERVOIRS
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摘要: 在自然水体水-气界面二氧化碳(CO2)通量的测定中常用的CO2检测仪器是基于长光路红外吸收法,仪器质量和体积偏大且价格高昂。为了降低研究成本,减小检测设备的质量和体积,将1种基于非分散红外(non-dispersive infrared,NDIR)原理的CO2传感器部署在通量箱中,搭建了1套低成本CO2检测仪器,并与原位检测对比实验。结果表明:低成本CO2检测仪的CO2体积分数检测结果相比参比仪器展现出良好的相关性(R2=0.86),低成本检测仪的相对偏差范围在-1.45%~0.92%。根据低成本检测仪检测结果计算出各检测点位的CO2通量在7.76~15.93 mmol/(m2·d),其变化规律与参比仪器的结果一致。环境相对湿度和传感器自身的电压漂移是CO2通量检测偏差的主要来源,可通过湿度修正和增加通量箱内CO2传感器数量的方法来降低这两者的干扰。低成本检测仪在测定水库CO2通量方面有良好的应用前景。
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关键词:
- 传感器 /
- 通量箱 /
- 二氧化碳(CO2)通量 /
- 水库 /
- 检测偏差
Abstract: The commonly used CO2 detection instrument for the measurement of CO2 flux at the water-air interface of natural water is based on the long light path infrared absorption method, which is bulky and expensive. To reduce the research cost and the mass and volume of the detection equipment, a low-cost CO2 sensor based on the principle of non-dispersive infrared (NDIR) was deployed in the flux box to build a low-cost CO2 detection instrument, and the in-situ detection contrast experiment with the referred instrument was carried out. The results showed that, CO2 volume fraction detection results of the low-cost CO2 detector showed a good correlation (R2=0.86) with the referred instrument, and the relative deviation range of the low-cost detector was -1.45% to 0.92%. According to the low-cost detector results, the CO2 flux at each detection point was estimated in the range of 7.76 to 15.93 mmol/(m2/d), and its change rule was the same as that of the referred instrument. Environmental relative humidity and voltage drift of the sensor itself were the main sources of CO2 flux detection deviation. The interference of these two factors could be reduced by humidity correction and increasing the number of CO2 sensors in the flux box. This low-cost detector has a good application prospect in measuring the CO2 flux of reservoirs.-
Key words:
- sensor /
- flux box /
- carbon dioxide flux /
- reservoir /
- detection deviation
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